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R Kroes

Publications and source records attributed to R Kroes.

97 records · Page 6Linked to original sources

A procedure for the safety evaluation of flavouring substances. Joint FAO/WHO Expert Committee on Food Additives.

This review describes a procedure for the safety evaluation of flavouring substances. Over 2500 flavouring substances are currently in use in food. While toxicity data do not exist on all flavouring substances currently in use, within structurally related groups of flavouring substances many do have toxicity data and this information along with knowledge of structure-activity relationships and data on the daily intake provides a framework for safety evaluation. The safety evaluation procedure provides a scientifically based practical method of integrating data on intake, structure-activity relationships, metabolism and toxicity to evaluate flavouring substances in a timely manner. The procedure has been used recently by the Joint FAO/WHO Expert Committee on Food Additives (JECFA) to evaluate a total of 263 flavouring substances.

Flavoring Agents↗

Threshold of toxicological concern for chemical substances present in the diet: a practical tool for assessing the need for toxicity testing.

The de minimis concept acknowledges a human exposure threshold value for chemicals below which there is no significant risk to human health. It is the underlying principle for the US Food and Drug Administration (FDA) regulation on substances used in food-contact articles. Further to this, the principle of Threshold of Toxicological Concern (TTC) has been developed and is now used by the Joint FAO/WHO Expert Committee on Food Additives (JECFA) in their evaluations. Establishing an accepted TTC would benefit consumers, industry and regulators, since it would preclude extensive toxicity evaluations when human intakes are below such threshold, and direct considerable time and cost resources towards testing substances with the highest potential risk to human health. It was questioned, however, whether specific endpoints that may potentially give rise to low-dose effects would be covered by such threshold. In this review, the possibility of defining a TTC for chemical substances present in the diet was examined for general toxicity endpoints (including carcinogenicity), as well as for specific endpoints, namely neurotoxicity and developmental neurotoxicity, immunotoxicity and developmental toxicity. For each of these endpoints, a database of specific no-observed-effect levels (NOELs) was compiled by screening oral toxicity studies. The substances recorded in each specific database were selected on the basis of their demonstrated adverse effects. For the neurotoxicity and developmental neurotoxicity databases, it was intended to cover all classes of compounds reported to have either a demonstrated neurotoxic or developmentally neurotoxic effect, or at least, on a biochemical or pharmacological basis were considered to have a potential for displaying such effects. For the immunotoxicity endpoint, it was ensured that only immunotoxicants were included in the database by selecting most of the substances from the Luster et al. database, provided that they satisfied the criteria for immunotoxicity defined by Luster. For the developmental toxicity database, substances were selected from the Munro et al. database that contained the lowest NOELs retrieved from the literature for more than 600 compounds. After screening these, substances showing any effect which could point to developmental toxicity as broadly defined by the US were recorded in the database. Additionally, endocrine toxicity and allergenicity were addressed as two separate cases, using different approaches and methodology. The distributions of NOELs for the neurotoxicity, developmental neurotoxicity and developmental toxicity endpoints were compared with the distribution of NOELs for non-specific carcinogenic endpoints. As the immunotoxicity database was too limited to draw such a distribution of immune NOELs, the immunotoxicity endpoint was evaluated by comparing immune NOELs (or LOELs-lowest-observed-effect levels-when NOELs were not available) with non-immune NOELs (or LOELs), in order to compare the sensitivity of this endpoint with non-specific endpoints. A different methodology was adopted for the evaluation of the endocrine toxicity endpoint since data currently available do not permit the establishment of a clear causal link between endocrine active chemicals and adverse effects in humans. Therefore, this endpoint was analysed by estimating the human exposure to oestrogenic environmental chemicals and evaluating their potential impact on human health, based on their contribution to the overall exposure, and their estrogenic potency relative to endogenous hormones. The allergenicity endpoint was not analysed as such. It was addressed in a separate section because this issue is not relevant to the overall population but rather to subsets of susceptible individuals, and allergic risks are usually controlled by other means (i.e. labelling) than the Threshold of Toxicological Concern approach. (ABSTRACT TRUNCATED)

Animals↗

Disposition kinetics of ethylene oxide, ethylene glycol, and 2-chlorethanol in the dog.

The disposition kinetics of ethylene oxide, ethylene glycol, and 2-chloroethanol were studied following their intravenous administration to beagle dogs. Plasma concentration of ethylene oxide was found to decline exponentially with a mean rate constant of 0.024 +/- 0.008 min-1 (mean +/- SD) and total body clearance of 20.0 +/- 5.2 ml/kg X min. Ethylene oxide was found to be metabolized mainly to ethylene glycol, which had a mean plasma half-life of 221.0 +/- 77.7 min and a total body clearance of 2.13 +/- 0.58 ml/kg X min. Between 7 and 24% of intravenously administered ethylene oxide was eliminated in the urine as ethylene glycol within 24 h. The elimination half-life and clearance values for 2-chlorethanol were 40.8 +/- 5.7 min and 10.3 +/- 1.7 ml/kg X min, respectively. The pharmacokinetic data gathered in the present investigation suggest that ethylene glycol rather than 2-chloroethanol is the major metabolite of ethylene oxide in the dog.

Animals↗

The effects of intravenous administration of 10% travamulsion fat emulsion to beagle dogs for 91 consecutive days.

The tolerance of 10% Travamulsion Intravenous Fat Emulsion (Travenol Laboratories, Inc., Deerfield, IL) was studied using beagle dogs. Physiological (0.9%) saline, USP, was used as the control, and Intralipid 10% Fat Emulsion (Vitrum, Sweden) as the reference article. The emulsions were administered intravenously to each of 10 animals for 91 days at a dosage of 40 ml (approximately 4 g)/kg of body weight/day. The saline was administered to 10 animals at 40 ml/kg/day. On day 92, 7 of the 10 animals in each group were necropsied. The remainder were observed and necropsied at approximately day 160. Toxicity was assessed on the basis of animal survival; changes in body weight, hematology, and serum chemistry; gross pathology; and histopathology. The results obtained for the Travenol emulsion correlated well with those for the Vitrum emulsion. The emulsions were well tolerated and they did not produce any major clinical signs of toxicity. All animals survived and gained weight. The Travenol emulsion administered provided about 45% of the total caloric requirement of the dog which is equal to an often used clinical dose. However, the emulsion was infused at six times the indicated clinical rate. Thus, in addition to demonstrating the similarity of Travenol and Vitrum emulsions, the results of this study indicate that the Travenol emulsion is safe for prolonged administration.

Animals↗

One-year time-sequence inhalation toxicity study of vinyl chloride in rats. III. Morphological changes in the liver.

Wistar rats were exposed to atmospheres containing 0 (control) or 5000 ppm vinyl chloride monomer (VCM), 7 h/day, 5 days/week, for a period of 52 weeks. After 4, 13, 26 and 52 weeks each time 10 rats/sex/group were killed and subjected to extensive examinations. The present paper describes the morphological changes found in the liver. The major parenchymal changes comprised swelling and malformation of mitochondria, an increased amount of smooth endoplasmic reticulum, necrosis, nuclear and cellular polymorphism of hepatocytes, "foci of cellular alteration", neoplastic nodules and hepatocellular carcinomas. A reduced glucose-6-phosphatase activity in hepatocytes and a strong sinusoidal activity of alkaline phosphatase were found within "foci of cellular alteration". The non-parenchymal alterations included focal dilatation of sinusoids, focal proliferation of atypical sinusoidal cells and multicentric angiosarcomas. The effects of VCM on the hepatic parenchyma seemed to precede those on the hepatic stroma.

Animals↗